一种基于实时曲线进化的多感官图像分割融合算法

Yuhua Ding, G. Vachtsevanos, A. Yezzi, W. Daley, Bonnie S. Heck-Ferri
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引用次数: 1

摘要

提出了一种基于偏微分方程(PDE)的特征级图像融合方法用于多感官图像分割。该融合模型的能量函数是多个函数的加权和,每个函数都是基于传感器图像的特征构建的。权重选择决定了模型处理多感官数据中涉及的冗余、冲突或互补信息的方式。该方法使用水平集实现,对于实时分割任务来说足够快。最后将该算法应用于x射线图像和视觉图像的分割,结果表明该融合算法具有高效、准确和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A real-time curve evolution-based image fusion algorithm for multisensory image segmentation
A partial differential equation (PDE)-based feature-level image fusion approach is proposed for multisensory image segmentation. The energy functional of the proposed fusion model is a weighted sum of several functionals, each constructed based on the characteristics of the sensor image. The weight selection decides the way that the model handles redundant, conflicting, or complementary information involved in the multisensory data. The method is implemented using level sets and is fast enough for real-time segmentation tasks. Finally the algorithm is applied to the segmentation of X-ray and visual images, and the results show that the fusion algorithm is efficient, accurate, and robust.
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